Health economic benefits through the use of diagnostic support systems and expert knowledge

Abstract Background Rare diseases are difficult to diagnose. Due to their rarity, heterogeneity, and variability, rare diseases often result not only in extensive diagnostic tests and imaging studies, but also in unnecessary repetitions of examinations, which places a greater overall burden on the h...

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Main Authors: Tina Willmen, Lukas Völkel, Simon Ronicke, Martin C. Hirsch, Jessica Kaufeld, Reinhard P. Rychlik, Annette D. Wagner
Format: Article
Language:English
Published: BMC 2021-09-01
Series:BMC Health Services Research
Subjects:
Online Access:https://doi.org/10.1186/s12913-021-06926-y
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spelling doaj-16bacde1aae14561b0b1ec9a5e412c2e2021-09-12T11:08:30ZengBMCBMC Health Services Research1472-69632021-09-0121111110.1186/s12913-021-06926-yHealth economic benefits through the use of diagnostic support systems and expert knowledgeTina Willmen0Lukas Völkel1Simon Ronicke2Martin C. Hirsch3Jessica Kaufeld4Reinhard P. Rychlik5Annette D. Wagner6Department of Nephrology, Hannover Medical SchoolInstitute for Empirical Health EconomicsMedical Clinic for Nephrology and Internal Intensive Care Medicine, Charité BerlinInstitute for AI in Medicine, University Hospital of Giessen and MarburgDepartment of Nephrology, Hannover Medical SchoolInstitute for Empirical Health EconomicsDepartment of Nephrology, Hannover Medical SchoolAbstract Background Rare diseases are difficult to diagnose. Due to their rarity, heterogeneity, and variability, rare diseases often result not only in extensive diagnostic tests and imaging studies, but also in unnecessary repetitions of examinations, which places a greater overall burden on the healthcare system. Diagnostic decision support systems (DDSS) optimized by rare disease experts and used early by primary care physicians and specialists are able to significantly shorten diagnostic processes. The objective of this study was to evaluate reductions in diagnostic costs incurred in rare disease cases brought about by rapid referral to an expert and diagnostic decision support systems. Methods Retrospectively, diagnostic costs from disease onset to diagnosis were analyzed in 78 patient cases from the outpatient clinic for rare inflammatory systemic diseases at Hannover Medical School. From the onset of the first symptoms, all diagnostic measures related to the disease were taken from the patient files and documented for each day. The basis for the health economic calculations was the Einheitlicher Bewertungsmaßstab (EBM) used in Germany for statutory health insurance, which assigns a fixed flat rate to the various medical services. For 76 cases we also calculated the cost savings that would have been achieved by the diagnosis support system Ada DX applied by an expert. Results The expert was able to achieve significant savings for patients with long courses of disease. On average, the expert needed only 27 % of the total costs incurred in the individual treatment odysseys to make the correct diagnosis. The expert also needed significantly less time and avoided unnecessary examination repetitions. If a DDSS had been applied early in the 76 cases studied, only 51–68 % of the total costs would have incurred and the diagnosis would have been made earlier. Earlier diagnosis would have significantly reduced costs. Conclusion The study showed that significant savings in the diagnostic process of rare diseases can be achieved through rapid referral to an expert and the use of DDSS. Faster diagnosis not only achieves savings, but also enables the right therapy and thus an increase in the quality of life for patients.https://doi.org/10.1186/s12913-021-06926-yrare diseaseshealth economic costsdiagnosis support systemsartificial intelligence
collection DOAJ
language English
format Article
sources DOAJ
author Tina Willmen
Lukas Völkel
Simon Ronicke
Martin C. Hirsch
Jessica Kaufeld
Reinhard P. Rychlik
Annette D. Wagner
spellingShingle Tina Willmen
Lukas Völkel
Simon Ronicke
Martin C. Hirsch
Jessica Kaufeld
Reinhard P. Rychlik
Annette D. Wagner
Health economic benefits through the use of diagnostic support systems and expert knowledge
BMC Health Services Research
rare diseases
health economic costs
diagnosis support systems
artificial intelligence
author_facet Tina Willmen
Lukas Völkel
Simon Ronicke
Martin C. Hirsch
Jessica Kaufeld
Reinhard P. Rychlik
Annette D. Wagner
author_sort Tina Willmen
title Health economic benefits through the use of diagnostic support systems and expert knowledge
title_short Health economic benefits through the use of diagnostic support systems and expert knowledge
title_full Health economic benefits through the use of diagnostic support systems and expert knowledge
title_fullStr Health economic benefits through the use of diagnostic support systems and expert knowledge
title_full_unstemmed Health economic benefits through the use of diagnostic support systems and expert knowledge
title_sort health economic benefits through the use of diagnostic support systems and expert knowledge
publisher BMC
series BMC Health Services Research
issn 1472-6963
publishDate 2021-09-01
description Abstract Background Rare diseases are difficult to diagnose. Due to their rarity, heterogeneity, and variability, rare diseases often result not only in extensive diagnostic tests and imaging studies, but also in unnecessary repetitions of examinations, which places a greater overall burden on the healthcare system. Diagnostic decision support systems (DDSS) optimized by rare disease experts and used early by primary care physicians and specialists are able to significantly shorten diagnostic processes. The objective of this study was to evaluate reductions in diagnostic costs incurred in rare disease cases brought about by rapid referral to an expert and diagnostic decision support systems. Methods Retrospectively, diagnostic costs from disease onset to diagnosis were analyzed in 78 patient cases from the outpatient clinic for rare inflammatory systemic diseases at Hannover Medical School. From the onset of the first symptoms, all diagnostic measures related to the disease were taken from the patient files and documented for each day. The basis for the health economic calculations was the Einheitlicher Bewertungsmaßstab (EBM) used in Germany for statutory health insurance, which assigns a fixed flat rate to the various medical services. For 76 cases we also calculated the cost savings that would have been achieved by the diagnosis support system Ada DX applied by an expert. Results The expert was able to achieve significant savings for patients with long courses of disease. On average, the expert needed only 27 % of the total costs incurred in the individual treatment odysseys to make the correct diagnosis. The expert also needed significantly less time and avoided unnecessary examination repetitions. If a DDSS had been applied early in the 76 cases studied, only 51–68 % of the total costs would have incurred and the diagnosis would have been made earlier. Earlier diagnosis would have significantly reduced costs. Conclusion The study showed that significant savings in the diagnostic process of rare diseases can be achieved through rapid referral to an expert and the use of DDSS. Faster diagnosis not only achieves savings, but also enables the right therapy and thus an increase in the quality of life for patients.
topic rare diseases
health economic costs
diagnosis support systems
artificial intelligence
url https://doi.org/10.1186/s12913-021-06926-y
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